College of Life Sciences and Chemistry, Hunan University of Technology, Zhuzhou 412007, China.
Zhuzhou Institute for Food and Drug Control, Zhuzhou 412000, China.
Mater Sci Eng C Mater Biol Appl. 2020 Apr;109:110615. doi: 10.1016/j.msec.2019.110615. Epub 2019 Dec 30.
Four nanostructured MnO with various controllable morphologies, including nanowires, nanorods, nanotubes and nanoflowers were synthesized, and then further composited with nitrogen-doped graphene (NG) with the assistance of ultrasonication. The surface morphologies, phase structures, and electrochemical performances of the proposed MnO/NG nanohybrids were investigated by various techniques, and their catalytic activities on the electrooxidation of dopamine (DA) and uric acid (UA) were compared systematically. The sensing performances were found to be highly correlated with their morphologies. Among these morphologies, the nanoflower-like MnO, composited with NG, displayed the most sensitive response signals for DA and UA. The boosted electrocatalytic activity was ascribed to the unique porous structure, large electroactive area, and low charge transfer resistance (R), which facilitated the electron transfer between electrode and analytes. Two linear response ranges (0.1 μM-10 μM and 10 μM-100 μM) were accompanied with very low detection limits of 34 nM and 39 nM for DA and UA, respectively. Moreover, the successful application of the MnONFs/NG composites for the simultaneous detection of DA and UA in human serum was realized using second-derivative linear sweep voltammetry (SDLSV). These findings give valuable insights for understanding the morphology-dependent sensing properties of MnO based nanomaterials, which is conducive to the rapid development of ubiquitous MnO-based electrochemical sensors.
四种具有不同可控形态的纳米结构 MnO(纳米线、纳米棒、纳米管和纳米花)被合成,然后在超声辅助下进一步与氮掺杂石墨烯(NG)复合。通过各种技术研究了所提出的 MnO/NG 纳米杂化物的表面形态、相结构和电化学性能,并系统比较了它们对多巴胺(DA)和尿酸(UA)电氧化的催化活性。传感性能与它们的形态高度相关。在这些形态中,与 NG 复合的纳米花状 MnO 对 DA 和 UA 表现出最敏感的响应信号。增强的电催化活性归因于独特的多孔结构、大的电活性面积和低的电荷转移电阻(R),这促进了电极和分析物之间的电子转移。两种线性响应范围(0.1 μM-10 μM 和 10 μM-100 μM),以及对 DA 和 UA 的检测限分别低至 34 nM 和 39 nM。此外,使用二阶导数线性扫描伏安法(SDLSV)成功地将 MnONFs/NG 复合材料应用于人血清中 DA 和 UA 的同时检测。这些发现为理解基于 MnO 的纳米材料的形态依赖性传感特性提供了有价值的见解,这有利于普遍存在的基于 MnO 的电化学传感器的快速发展。